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Solutions

Veristar Energy engineers onsite generation systems that bypass utility constraints and secure your energy future. We bridge the gap between design and reality, owning the entire lifecycle from initial tariffs to final commissioning. We don’t just supply hardware; we deliver the technical decisiveness required for critical facilities to scale without limits.

  • Microgrids can provide complete energy security by combining several energy sources to create a valuable tool for decarbonization and energy freedom.

  • The microturbine is in a class of its own. Veristar is proud to offer this unparalleled clean energy technology to North America, which we’ve done since 2014.

  • Using Capstone Microturbines for thermal recovery not only improves energy efficiency but also reduces the overall energy consumption and carbon footprint of an operation. 

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Rentals

For remote oilfield assets, high-demand greenhouses, and large-scale construction, power is a critical logistical requirement. Veristar Energy provides high-availability, standalone rental power systems engineered for geographically isolated operations and developers facing utility interconnection delays. We deliver the immediate electrical capacity needed for rapid site development, allowing you to scale operations without waiting on traditional infrastructure. Leveraging a 15-year legacy of technical mastery—formerly as Lone Star Power Solutions—our rental fleet offers flexible short and long-term terms with a focus on operational reliability. Our systems are engineered for minimal human intervention and a zero-spillage profile, making them ideal for sensitive environments. A key advantage is fuel flexibility; our units can run on available site fuels, including production gas, which drastically reduces the cost and risk of fuel trucking.

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Data Centers

In the data center environment, the gap between a power disturbance and a backup response is measured in millions of dollars. Veristar Energy moves beyond the limitations of idle standby, offering a synchronous resilience model that dictates the pace of facility uptime. Our microturbine systems run in parallel with your primary load, providing instantaneous response and mechanical inertia that traditional infrastructure cannot match. Leveraging a 15-year legacy in mission-critical environments, we provide a "pay-as-you-grow" modular strategy with containerized units that accelerate commissioning and simplify site connection. These high-intelligence systems allow for individual maintenance without interrupting the primary load, ensuring "always on" performance while eliminating the need for onsite diesel storage and complex permitting.

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The Foundation for Renewable Energy Microgrids

Veristar Energy utilizes microturbines in the design of microgrids for their ability to supply high quality, inverter-based power to facilities. The microturbine design ensures that baseload power can be supplied to a facility, particularly in off-grid configurations. Microturbines can offset the intermittent nature of renewables and, in some cases, eliminate the need for energy storage.  Microturbines quickly respond to changes in load, addressing intermittency faster than an internal combustion engine synchronous generator solution could.

Key Benefits

Resiliency and Reliability

Microgrids can continue to operate even if there’s an outage on the main grid, ensuring a continuous supply of electricity. This feature is critical for facilities like hospitals, data centers, or military bases where power supply continuity is of utmost importance.

Energy Efficiency

Since microgrids generate power closer to where it’s consumed, they reduce the amount of energy lost in transmission and distribution, significantly increasing the efficiency of energy usage.

Renewable Energy Integration

Microgrids often incorporate renewable energy sources, like wind or solar power. They can also include energy storage systems, which can store excess power generated and use it later when needed.

Cost Reductions

Over time, microgrids can be more cost-effective, especially if they generate power from renewable sources. They also avoid costs related to energy loss in transmission and distribution.

Reduced Greenhouse Gas Emissions

Microgrids allow for integration of renewable sources and overall improvement of energy efficiency, which contributes to reducing greenhouse gas emissions and mitigating climate change.

Grid Support

Microgrids can also provide support services to the main grid, like voltage support, frequency regulation, and spinning reserve.

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Resiliency & Reliability

Microgrids can continue to operate even if there’s an outage on the main grid, ensuring a continuous supply of electricity. This feature is critical for facilities like hospitals, data centers, or military bases where power supply continuity is of utmost importance.

Silhouette of engineer with laptop near electricity pylon, sunset background

Energy Efficiency

Since microgrids generate power closer to where it’s consumed, they reduce the amount of energy lost in transmission and distribution, significantly increasing the efficiency of energy usage.

Solar panels and wind turbine generating clean energy under a cloudy sky.

Renewable Energy Integration

Microgrids often incorporate renewable energy sources, like wind or solar power. They can also include energy storage systems, which can store excess power generated and use it later when needed.

Solar panels and wind turbine generating clean, renewable energy under sunlight.

Cost Reductions

Over time, microgrids can be more cost-effective, especially if they generate power from renewable sources. They also avoid costs related to energy loss in transmission and distribution.

Large greenhouse with bright lights, plants growing inside, and green grass.

Reduced Greenhouse Gas Emissions

Microgrids allow for integration of renewable sources and overall improvement of energy efficiency, which contributes to reducing greenhouse gas emissions and mitigating climate change.

Blue electrical outlets. Close-up of a row of blue power plugs.

Grid Support

Microgrids can also provide support services to the main grid, like voltage support, frequency regulation, and spinning reserve.

iStock-1689247547

Resiliency and Reliability

Microgrids can continue to operate even if there’s an outage on the main grid, ensuring a continuous supply of electricity. This feature is critical for facilities like hospitals, data centers, or military bases where power supply continuity is of utmost importance.

Silhouette of engineer with laptop, power lines and sunset background.

Energy Efficiency

Since microgrids generate power closer to where it’s consumed, they reduce the amount of energy lost in transmission and distribution, significantly increasing the efficiency of energy usage.

Solar panels and wind turbines are generating clean energy under cloudy skies.

Renewable Energy Integration

Microgrids often incorporate renewable energy sources, like wind or solar power. They can also include energy storage systems, which can store excess power generated and use it later when needed.

Solar panels and wind turbine generating clean energy under a bright blue sky.

Cost Reductions

Over time, microgrids can be more cost-effective, especially if they generate power from renewable sources. They also avoid costs related to energy loss in transmission and distribution.

Large greenhouse with bright yellow lights shining through glass panels.

Reduced Greenhouse Gas Emissions

Microgrids allow for integration of renewable sources and overall improvement of energy efficiency, which contributes to reducing greenhouse gas emissions and mitigating climate change.

Row of blue electrical plugs with visible white labels, close-up shot.

Grid Support

Microgrids can also provide support services to the main grid, like voltage support, frequency regulation, and spinning reserve.

Latest Projects

Wind turbines on cliffs near ocean, renewable energy source on sunny day

Capstone Microturbines

The microturbine is in a class of its own. Veristar is proud to offer this unparalleled clean energy technology to North America, which we’ve done since 2014.

CHP and Heat Recovery

Traditional power generation is notoriously inefficient, losing up to two-thirds of fuel energy as waste heat. Veristar Energy transforms this liability into a strategic asset through Combined Heat and Power (CHP) integration, capturing thermal energy to repurpose for steam, hot water, or industrial drying. By effectively doubling system efficiency, we allow facilities to outpace the utility in both cost-per-kWh and carbon intensity. Leveraging a 15-year legacy of thermal mastery, our solutions offer thermal monetization—transforming exhaust into high-yield assets like chilled water or CO2—and accelerated deployment through in-house coordination of fuel and power. Our proprietary controllers provide real-time optimization of fluctuating loads, ensuring grid independence and securing ROI on your own timeline.

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Next Generation Technology

01

Air-bearing, Quiet Operation

No lubricating oil or coolants required. 65 dB at 10 meters.

02

Ultra-low Emissions & Multi-fuel Capacity

Clean UPS quality power with less than 5ppm NOx and adaptable to gaseous and hydrogen.

03

UL Certified

UL 1741/SA and UL2200

04

Remote Monitoring & Modular Design

Easy and simple to scale with complete view of performance at all times.

Key Benefits

Metallic turbine engine close-up view with complex internal structure on white background

Patented Air-Bearing Technology

The air bearing allows the microturbine to operate with zero friction and zero “wear and tear”. The critical Capstone technological innovation is the use of air bearings. Capstone is the only company that uses air bearings in the hot section of a gas turbine. Air bearings enable the microturbine to operate without the use of oil or other lubricants. There is no oil in the microturbine, which means no oil changes. The system is also air cooled, so there are no coolants or separate cooling systems used in the microturbine.

Close-up of turbine blades. Industrial machinery with metallic, detailed features.

One Moving Part

Unlike reciprocating engines which have hundreds of moving parts, the microturbine has only one single moving part. The turbo-generator shaft rotates at extremely high speeds to produce power as cleanly and efficiently as possible. The single moving part means that there is less likelihood of system failure or need to maintain and repair. The shaft contains the generator, compressor and turbine on a single assembly, rotating at up to 96,000 RPM.

Green plants thriving inside a large, glass greenhouse with blue sky

Ultra-Low Emissions

Veristar Energy utilizes microturbines that provide customers with one of the cleanest generation technologies available today. Considerably cleaner than the cleanest reciprocating engines, microturbines are certified by the California Air Resources Board which demands the strictest emissions limits in North America.


Combined Heat and Power (CHP) systems contribute to a cleaner grid because they can produce energy so efficiently. Generating and consuming energy at the same location means that microturbines eliminate power line losses and CHP utilizes the waste heat instead of emitting it into the atmosphere.

Close-up of turbine blades with orange and gold color during operation.

High Efficiency Systems

Injector staging allows for high part load efficiency. Continuous combustion creates combustion stability and low emissions. Modularity allows for maximum efficiency and resiliency.

Close-up of electricity meters showing kWh usage numbers and readings.

Scalable, Modular Design

The use of smaller power blocks allows Capstone to deliver the most efficient generated power at partial loads. The one-megawatt package, for example, contains five 200kW power bays allowing it to operate at lower intervals at maximum efficiency by staging the individual bays as load increases. Each bay can operate independently, and maintenance can be performed on one bay at a time while the others continue to generate power.

Engineer examines industrial equipment, wearing white hard hat and safety glasses.

Lowest Maintenance Cost of any Generation Technology

Backed by the Capstone Factory Protection Plan (FPP), there is no part or service that is excluded from coverage during the term of the agreement. The FPP is a fixed price for the term, with no inflation or overages.

Array of blue spheres, connected by copper pipes and framework.

Fuel Flexibility

Microturbines can operate on a variety of fuels, such as natural gas, biogas, diesel, or propane, allowing for adaptability to local fuel availability and reducing dependence on a single fuel source.


Capstone continues to expand and develop new fuel standards including for Hydrogen. Currently Capstone microturbines can safely run on a 30% hydrogen - 70% natural gas blend. Within the next few years, Capstone is expected to release retrofit kits that will allow microturbines to be fueled solely by hydrogen.

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Compact Size

Due to their small footprint and lighter weight, microturbines can be easily integrated into existing buildings or facilities, minimizing the need for extensive construction or modifications.


This includes fitting in elevators, basement, parking garages and other tight spaces simply too small for other equipment types. 

Aerial view of an illuminated industrial plant complex near the coast

Microgrid Ready

A microgrid is a distribution network that incorporates a variety of Distributed Energy Resources (DERs) that can be optimized and aggregated into a single system. The integrated system can balance loads and generation with or without energy storage and is capable of islanding whether connected or not connected to a traditional utility power grid. 


DERs typically include dual-mode microturbines, reciprocating engines, solar photovoltaic (PV), wind turbines, fuel cells and battery storage. 

Electricity pylons with power lines stretch across the arid desert landscape, energy distribution.

Operate With or Without a Utility Grid

Microturbines can function in both grid-connected and off-grid modes, providing energy security and resilience, particularly during grid outages or in remote locations.


Microturbines can be connected to electricity grids, and in the event of a widespread outage, can disconnect from the main grid to operate independently and supply electricity to homes and businesses that are connected to the microturbines electricity network.

Key Benefits

Close-up of a complex metallic engine component with intricate details and design.

Patented Air-Bearing Technology

The air bearing allows the microturbine to operate with zero friction and zero “wear and tear”. The critical Capstone technological innovation is the use of air bearings. Capstone is the only company that uses air bearings in the hot section of a gas turbine. Air bearings enable the microturbine to operate without the use of oil or other lubricants. There is no oil in the microturbine, which means no oil changes. The system is also air cooled, so there are no coolants or separate cooling systems used in the microturbine.

Close-up of industrial turbine blades with intricate details and textures

One Moving Part

Unlike reciprocating engines which have hundreds of moving parts, the microturbine has only one single moving part. The turbo-generator shaft rotates at extremely high speeds to produce power as cleanly and efficiently as possible. The single moving part means that there is less likelihood of system failure or need to maintain and repair. The shaft contains the generator, compressor and turbine on a single assembly, rotating at up to 96,000 RPM.

Inside view of a large greenhouse with rows of green plants growing.

Ultra-Low Emissions

Veristar utilizes microturbines that provide customers with one of the cleanest generation technologies available today. Considerably cleaner than the cleanest reciprocating engines, microturbines are certified by the California Air Resources Board which demands the strictest emissions limits in North America.


Combined Heat and Power (CHP) systems contribute to a cleaner grid because they can produce energy so efficiently. Generating and consuming energy at the same location means that microturbines eliminate power line losses and CHP utilizes the waste heat instead of emitting it into the atmosphere.

Close-up of turbine blades with orange and gold colors highlighting details

High Efficiency Systems

Injector staging allows for high part load efficiency. Continuous combustion creates combustion stability and low emissions. Modularity allows for maximum efficiency and resiliency.

Electricity meters showing kWh usage 013268, measuring energy consumption in detail.

Scalable, Modular Design

The use of smaller power blocks allows Capstone to deliver the most efficient generated power at partial loads. The one-megawatt package, for example, contains five 200kW power bays allowing it to operate at lower intervals at maximum efficiency by staging the individual bays as load increases. Each bay can operate independently, and maintenance can be performed on one bay at a time while the others continue to generate power.

Engineer examines industrial turbine blades, wearing safety glasses and a hard hat.

Lowest Maintenance Cost of any Generation Technology

Backed by the Capstone Factory Protection Plan (FPP), there is no part or service that is excluded from coverage during the term of the agreement.  The FPP is a fixed price for the term, with no inflation or overages.

Stacked blue spheres with copper piping, a structural and visual display.

Fuel Flexibility

Microturbines can operate on a variety of fuels, such as natural gas, biogas, diesel, or propane, allowing for adaptability to local fuel availability and reducing dependence on a single fuel source.


Capstone continues to expand and develop new fuel standards including for Hydrogen. Currently Capstone microturbines can safely run on a 30% hydrogen - 70% natural gas blend. Within the next few years, Capstone is expected to release retrofit kits that will allow microturbines to be fueled solely by hydrogen.

Battery storage system with solar panels and wind turbines in the background.

Compact Size

Due to their small footprint and lighter weight, microturbines can be easily integrated into existing buildings or facilities, minimizing the need for extensive construction or modifications.


This includes fitting in elevators, basement, parking garages and other tight spaces simply too small for other equipment types. 

Aerial view of a chemical plant at dusk with various structures and lights

Microgrid Ready

A microgrid is a distribution network that incorporates a variety of Distributed Energy Resources (DERs) that can be optimized and aggregated into a single system. The integrated system can balance loads and generation with or without energy storage and is capable of islanding whether connected or not connected to a traditional utility power grid. 


DERs typically include dual-mode microturbines, reciprocating engines, solar photovoltaic (PV), wind turbines, fuel cells and battery storage. 

Electricity pylons and power lines in a desert landscape against a sunset.

Operate With or Without a Utility Grid

Microturbines can function in both grid-connected and off-grid modes, providing energy security and resilience, particularly during grid outages or in remote locations.


Microturbines can be connected to electricity grids, and in the event of a widespread outage, can disconnect from the main grid to operate independently and supply electricity to homes and businesses that are connected to the microturbines electricity network.

Latest Projects

Combined Heat and Power (CHP)

Using Capstone Microturbines for thermal recovery not only improves energy efficiency but also reduces the overall energy consumption and carbon footprint of an operation. 

Smoke billowing from power plant chimneys against a clear blue sky.
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Combined Heat & Power (CHP)

Overview

Thermal energy can be just as valuable as electricity in our applications. When we perform an economic analysis, we examine the gas and electrical consumption at your facility to uncover the utility and energy savings.


The unique design of microturbine technology allows customers to recover thermal energy that would otherwise be wasted in power generation from a single heat source – the exhaust of the turbine.


Waste heat is useful in a variety of applications:  Industrial processes can inject exhaust heat for drying processes, healthcare facilities can recover exhaust heat to produce steam, and residential buildings can transform heat into free cooling in the summertime.


Our team will work with you to unlock maximum value from onsite generation for your operations. We’ve found that in some cases, thermal energy generated by microturbines can avoid replacement or extend the life of existing Heating, Ventilation, and Air Conditioning (HVAC) equipment.

Learn more about Alfa Laval heat recovery solutions

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Learn more about Alfa Laval heat recovery solutions

Biogas Monetization

Untapped biogas is more than an environmental liability; it is a stranded financial asset. Veristar Energy specializes in converting methane-rich waste streams from agricultural, municipal, and industrial sources into high-value energy and revenue. We move beyond simple flare mitigation to design sophisticated monetization strategies that transform raw biogas into reliable onsite power or Renewable Natural Gas (RNG). Leveraging a 15-year legacy of technical mastery and regulatory expertise, we eliminate friction by managing North American carbon credit markets (LCFS/RFS) and grid interconnections in-house. Our proprietary controllers provide real-time optimization, prioritizing onsite consumption or grid export based on fluctuating energy prices to ensure peak financial performance. 

Microgrids

In demanding operational environments, energy is a strategic asset that dictates the pace of production. Veristar Energy engineers sophisticated microgrids that ensure high-availability performance, whether you are navigating grid instability or operating in remote, off-grid locations. We move beyond traditional backup to design fully autonomous energy ecosystems; for off-grid applications, our microgrids function as the primary operational core, while our grid-connected systems provide fail-safe redundancy against the rising costs of downtime. Leveraging a 15-year legacy of technical mastery, we manage the entire integration in-house—from fuel supply to proprietary control logic—to bypass traditional utility timelines and accelerate commissioning. Our advanced algorithms optimize Distributed Energy Resource (DER) assets, executing instantaneous transitions and transforming a "safety net" into a high-performing financial asset through optimized utilization.

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Aerial view of a power plant with cooling towers and infrastructure.

Combined Heating
and Power

During the process of generating electricity, waste heat from the exhaust is recovered in a CHP plant, generating hot water for process or space heating applications. The simplest thermal load to supply is hot water, especially for retrofit projects where connecting to an existing hot water supply is relatively straightforward. Hot water load tends to be less seasonally dependent than space heating, and therefore, more coincident to the electric load in the building.

Combined Cooling, Heating & Power

Combined Cooling, Heat and Power (CCHP) refers to the process of using waste heat produced by a microturbine system to power an absorption chiller or a direct-fired chiller, to generate chilled water for applications such as air conditioning or refrigeration, in addition to electricity and heat production. Using microturbines for CCHP provides numerous benefits to a facility, saving on utility costs, reducing emissions, and reducing overall energy consumption when compared with a traditional separate heat and power system.

Heat Recovery Steam Generation

In steam applications, thermal energy from a microturbine exhaust can be common-ducted together and then recovered to produce steam. Heat Recovery Steam Generators (HRSGs) can be used to generate either low or high pressure steam and duct burners or steam boilers can be added to the system to build more highly efficient capacity, often offsetting the use of existing gas-fired boilers.

Direct Exhaust

An alternative use for waste heat is direct integration of the exhaust from the microturbine. High temperature, surplus oxygen and low water content from the exhaust gas enables your facility to use the heat at an industrial scale. The oxygen concentration from the microturbine exhaust is high, allowing the waste heat to be used in direct heating or as an air pre-heater for downstream burners. The exhaust is even suitable for a number of applications in food processing and greenhouses because of the oxygen-rich exhaust, low emissions and air bearing technology, which allows the microturbine to operate without oil lubrication.

Industrial plant with large metal tanks and pipes against blue sky

Combined Heating
and Power

During the process of generating electricity, waste heat from the exhaust is recovered in a CHP plant, generating hot water for process or space heating applications. The simplest thermal load to supply is hot water, especially for retrofit projects where connecting to an existing hot water supply is relatively straightforward. Hot water load tends to be less seasonally dependent than space heating, and therefore, more coincident to the electric load in the building.

Tall modern office buildings with illuminated windows at dusk in city

Combined Cooling, Heating & Power

Combined Cooling, Heat and Power (CCHP) refers to the process of using waste heat produced by a microturbine system to power an absorption chiller or a direct-fired chiller, to generate chilled water for applications such as air conditioning or refrigeration, in addition to electricity and heat production. Using microturbines for CCHP provides numerous benefits to a facility, saving on utility costs, reducing emissions, and reducing overall energy consumption when compared with a traditional separate heat and power system.

Industrial power plant with tall smokestacks against a colorful sunset background.

Heat Recovery Steam Generation

In steam applications, thermal energy from a microturbine exhaust can be common-ducted together and then recovered to produce steam. Heat Recovery Steam Generators (HRSGs) can be used to generate either low or high pressure steam and duct burners or steam boilers can be added to the system to build more highly efficient capacity, often offsetting the use of existing gas-fired boilers.

Industrial metal towers against a cloudy sky, representing energy infrastructure and production.

Direct Exhaust

An alternative use for waste heat is direct integration of the exhaust from the microturbine. High temperature, surplus oxygen and low water content from the exhaust gas enables your facility to use the heat at an industrial scale. The oxygen concentration from the microturbine exhaust is high, allowing the waste heat to be used in direct heating or as an air pre-heater for downstream burners. The exhaust is even suitable for a number of applications in food processing and greenhouses because of the oxygen-rich exhaust, low emissions and air bearing technology, which allows the microturbine to operate without oil lubrication.

Large industrial stainless steel tanks and pipes against a blue sky background.

Combined Heating
& Power

During the process of generating electricity, waste heat from the exhaust is recovered in a CHP plant, generating hot water for process or space heating applications. The simplest thermal load to supply is hot water, especially for retrofit projects where connecting to an existing hot water supply is relatively straightforward. Hot water load tends to be less seasonally dependent than space heating, and therefore, more coincident to the electric load in the building.

Modern skyscrapers with illuminated windows in a busy downtown area at night.

Combined Cooling, Heating & Power

Combined Cooling, Heat and Power (CCHP) refers to the process of using waste heat produced by a microturbine system to power an absorption chiller or a direct-fired chiller, to generate chilled water for applications such as air conditioning or refrigeration, in addition to electricity and heat production. Using microturbines for CCHP provides numerous benefits to a facility, saving on utility costs, reducing emissions, and reducing overall energy consumption when compared with a traditional separate heat and power system.

Industrial power plant with tall smokestacks against a colorful sunset sky.

Heat Recovery Steam Generation

In steam applications, thermal energy from a microturbine exhaust can be common-ducted together and then recovered to produce steam. Heat Recovery Steam Generators (HRSGs) can be used to generate either low or high pressure steam and duct burners or steam boilers can be added to the system to build more highly efficient capacity, often offsetting the use of existing gas-fired boilers.

Industrial metal towers against a cloudy sky, representing energy infrastructure and processing.

Direct Exhaust

An alternative use for waste heat is direct integration of the exhaust from the microturbine. High temperature, surplus oxygen and low water content from the exhaust gas enables your facility to use the heat at an industrial scale. The oxygen concentration from the microturbine exhaust is high, allowing the waste heat to be used in direct heating or as an air pre-heater for downstream burners. The exhaust is even suitable for a number of applications in food processing and greenhouses because of the oxygen-rich exhaust, low emissions and air bearing technology, which allows the microturbine to operate without oil lubrication.

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Alfa Laval

Heat Recovery Solutions

Latest Projects

Hennepin County Home School

Industrial, Manufacturing & Data Centers

Rock Run Industries

Industrial, Manufacturing & Data Centers, Remote & Natural Resource Operations

South Burlington WWTP

Remote & Natural Resource Operations

Wausau WWTP

Remote & Natural Resource Operations

Work with a Team Specializing in Microturbine Applications

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Design

Working in collaboration with your team, we size energy systems so that you benefit from both electricity and thermal energy generation, year-round.

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Installation

Installation is on your terms: We can work alongside your contractors or source reputable partners on your behalf. Our in-house engineers with over 40+ years of combined experience installing Capstone microturbines will provide application engineering and support.

Customer service representative wearing headset, ready to assist customers with support.

Ongoing Service + Support

Our team of factory-certified technicians provide ongoing service and support for your facility staff, when needed. Services include 24/7 remote monitoring, so that your systems performance remains high and operations remain uninterrupted.

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How We Work

Our energy experts deploy innovative technical solutions customized to our customers’ unique energy, business, and climate needs.

Veristar delivers onsite energy solutions designed around the way you operate. From long-term assets to rapid-response temporary solutions, our team ensures that you have the power you need—reliable, efficient, and built with purpose. No matter the challenge, we bring the expertise, technology, and support to keep your operations moving.

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We listen and understand

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We work with you, not just for you

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We design and build

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You save money and gain energy freedom

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We stay with you for the life of the project

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We treat you as our partner and always deal honestly and openly

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We keep you informed at each step, so that you’re always in control

Get In Touch
We take pride in delivering world-class energy solutions for our customers, and providing the best possible service.

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Resilient Infrastructure Designed for Growth

We go beyond equipment supply to deliver integrated energy assets that secure your operational future. Let’s discuss how our end-to-end engineering and execution can empower your next expansion.

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